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Geometry-Aware Gradient Algorithms for Neural Architecture Search

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arxiv 2004.07802 v5 pith:4JUK444D submitted 2020-04-16 cs.LG cs.CVcs.NEmath.OCstat.ML

classification cs.LGcs.CVcs.NEmath.OCstat.ML
keywords searchoptimizationachievealgorithmsarchitecturecontinuousgeometry-awaremethods
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Recent state-of-the-art methods for neural architecture search (NAS) exploit gradient-based optimization by relaxing the problem into continuous optimization over architectures and shared-weights, a noisy process that remains poorly understood. We argue for the study of single-level empirical risk minimization to understand NAS with weight-sharing, reducing the design of NAS methods to devising optimizers and regularizers that can quickly obtain high-quality solutions to this problem. Invoking the theory of mirror descent, we present a geometry-aware framework that exploits the underlying structure of this optimization to return sparse architectural parameters, leading to simple yet novel algorithms that enjoy fast convergence guarantees and achieve state-of-the-art accuracy on the latest NAS benchmarks in computer vision. Notably, we exceed the best published results for both CIFAR and ImageNet on both the DARTS search space and NAS-Bench201; on the latter we achieve near-oracle-optimal performance on CIFAR-10 and CIFAR-100. Together, our theory and experiments demonstrate a principled way to co-design optimizers and continuous relaxations of discrete NAS search spaces.

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  1. The Good, The Efficient and the Inductive Biases: Exploring Efficiency in Deep Learning Through the Use of Inductive Biases

    cs.LG 2024-11 conditional novelty 3.0 of 10

    A dissertation synthesizing the author's papers on continuous kernel convolutions and symmetry-preserving architectures, claiming these inductive biases improve deep learning efficiency.

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